Exaptation of two ancient immune proteins into a new dimeric pore-forming toxin in snails

M L Giglio1, S Ituarte1, V Milesi2

  • 1Instituto de Investigaciones Bioquímicas de La Plata "Prof. Dr. Rodolfo R. Brenner", INIBIOLP, CONICET CCT La Plata - Universidad Nacional de La Plata (UNLP), Facultad de Ciencias Médicas,1900 La Plata, Argentina.

Insights

Apple snail egg toxin PmPV2, a rare pore-forming animal toxin, reveals a novel AB toxin structure. This Membrane Attack Complex-Perforin (MACPF) toxin combines immune proteins for defense against predation.

Area of Science:

  • Biochemistry and Structural Biology
  • Evolutionary Biology
  • Toxicology

Background:

  • The Membrane Attack Complex-Perforin (MACPF) protein family has diverse roles but rarely exhibits pore-forming toxic functions in animal venoms.
  • Pore-forming toxins are crucial for cellular defense and predation, yet their evolution and structural diversity are not fully understood.

Purpose of the Study:

  • To elucidate the three-dimensional structure and functional mechanism of PmPV2, a MACPF toxin from poisonous apple snail eggs.
  • To investigate the evolutionary novelty of PmPV2 as a rare animal pore-forming toxin.

Main Methods:

  • Determined the structure of PmPV2 using negative-stain electron microscopy (17.2 Å resolution) and small-angle X-ray scattering (SAXS).
  • Experimentally validated the predicted functions of the toxin's subunits.

Main Results:

  • PmPV2 exhibits a unique dimeric structure, forming an AB toxin by combining MACPF and tachylectin immune proteins.
  • The MACPF domain is fused with a novel invertebrate-specific Ct-accessory domain.
  • PmPV2 functions as a true pore-forming toxin, with the tachylectin subunit delivering the MACPF subunit to disrupt lipid bilayers and alter membrane conductance.

Conclusions:

  • PV2s represent a novel class of pore-forming toxins evolved through protein exaptation, linking two immune proteins for a new defensive role.
  • This finding provides an unparalleled example of how existing protein functions can be repurposed to create novel toxic entities.

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